In Vitro Inhibition Test of Turmeric and in Vivo Total Bacterial Count in the Intestinal Digesta of Mojosari Duck Fed Diet Containing Graded Levels of Turmeric
Abstract
This study aimed to determine the inhibition value of turmeric (Curcuma longa) against Salmonella and Escherichia coli and evaluate the bacterial population in the small intestinal digesta of Mojosari ducks. This study was arranged using a Completely Randomized Design (CRD) with six treatments and four replications; eachreplication consisted of eight Mojosari ducks.The in vitro study used four treatments of different concentrations of turmeric, consisting of Control/only water (C0), turmeric 98% + 2% water(C1), Probiotic 98% and 2% water (C2), turmeric 92%, and probiotic 8% (C3),and Bacitracin 92% + water 8% (C4). Then, the inhibition zone diameter was measured using the agar well diffusion method. On the other hand, the in vivo study was carried out by employing 192 Mojosari duck raised for 60 days. They were given the following dietary treatments, namely T0= basal diet, T1= basal diet supplemented with turmeric 0.2%, T2= basal diet supplemented with supplemented with turmeric 0.8%, T3= basal diet supplemented with turmeric 0.2%+probiotic 0.1% and T4=feed basal supplemented with supplemented with turmeric 0.8% + probiotic 0.6%, and T5 = basal diet + Zinc Bacitracin 0.01%. The variables measured were the total bacterial population based on the Total Plate Count (TPC) in the small intestinal digesta of Mojosari ducks. The Data were analyzed using one-way ANOVA. The differences among means were tested using theLeast Significant Difference (LSD) test.
References
Adamczak, A., Ożarowski, M., & Karpiński, T. M. (2020). Curcumin is a natural antimicrobial agent with strain-specific activity. Pharmaceuticals, 13(7), 153. https://doi.org/10.3390/ph13070153
Adzitey, F., Rusul, G., & Huda, N. (2012). Prevalence and antibiotic resistance of Salmonella serovars in ducks, duck rearing and processing environments in Penang, Malaysia. Food Research International, 45, 947–952. https://doi.org/10.1016/j.foodres.2011.02.051
Alok, A., Singh, I., Singh, S., & Jha, A. (2017). Curcumin: Pharmacological actions and its role in head and neck squamous cell carcinoma - A review. In Journal of Indian Academy of Oral Medicine and Radiology (Vol. 29, Issue 2, pp. 115–118). https://doi.org/10.4103/jiaomr.JIAOMR_100_16
Antony, S., Kuttan, R., & Kuttan, G. (1999). Immunomodulatory activity of Curcumin. Immunological Investigations, 28, 5–6. https://doi.org/10.3109/08820139909062263.
Astuti, F. K., Busono, W., & Sjofjan, O. (2015). Pengaruh penambahan probiotik cair dalam pakan terhadap penampilan produksi pada ayam pedaging. Jurnal Pembangunan Dan Alam Lestari, 6(2), 99–104.
Bintsis, T. (2018). Lactic acid bacteria as starter cultures: An update in their metabolism and genetics. AIMS Microbiology, 4(4), 665–668. https://doi.org/10.3934/microbiol.2018.4.665
Bouarab-Chibane, L., Forquet, V., Lantéri, P., Clément, Y., Léonard-Akkari, L., Oulahal, N., Degraeve, P., & Bordes, C. (2019). Antibacterial properties of polyphenols: Characterization and QSAR (Quantitative structure-activity relationship) models. Frontiers in Microbiology, 10, 829. https://doi.org/10.3389/fmicb.2019.00829
Cha, S. Y., Kang, M., Yoon, R. H., Park, C. K., Moon, O. K., & Jang, H. K. (2013). Prevalence and antimicrobial susceptibility of Salmonella isolate in Pekin ducks from South Korea. Comparative Immunology, Microbiology and Infectious Diseases, 36(5), 473–479. https://doi.org/10.1016/j.cimid.2013.03.004
Chouhan, S., Sharma, K., & Guleria, S. (2017). Antimicrobial Activity of Some Essential Oils—Present Status and Future Perspectives. Medicines, 43(5), 8. https://doi.org/10.3390/medicines4030058.
Davis, W. W., and Stout, T. R. (1971). Disc Plate Method of Microbiological Antibiotic Assay. Applied Microbiology, 22(4), 659–665. https://doi.org/10.1128/am.22.4.666-670.1971.
Diaz-Sanchez, S., D’Souza, D., Biswas, D., & Hanning, I. (2015). Botanical alternatives to antibiotics for use in organic poultry production. Poultry Science, 94(6), 1419–1430. https://doi.org/10.3382/ps/pev014.
Dono, N. D. (2014). Turmeric (curcuma longa linn.) supplementation as an alternative to antibiotics in poultry diets. Indonesian Bulletin of Animal and Veterinary Sciences, 23(1). https://doi.org/10.14334/wartazoa.v23i1.958.
Fandi, A., Muryani, R., & Suprijatna, E. (2019). Profil saluran pencernaan itik tegal betina yang diberi pakan tambahan kombinasi limbah ekstrak daun pepaya dan bakteri asam laktat. Sains Peternakan, 17(1), 17–23. https://doi.org/10.20961/sainspet.v17i1.25120.
Fernandes, A. J. D., Ferreira, M. R. A., Randau, K. P., De Souza, T. P., and Soares, L. A. L. (2012). Total flavonoids content in the raw material and aqueous extractives from Bauhinia monandra Kurz (Caesalpiniaceae). The Scientific World Journal, 923462. https://doi.org/10.1100/2012/923462.
Fradiaz, S. (1993). Analisis Mikrobiologi Pangan. Raja Grapindo Persada, Jakarta.
Gul, P., & Bakht, J. (2015). Antimicrobial activity of turmeric extract and its potential use in food industry. Journal of Food Science and Technology, 5(4), 2272–2279. https://doi.org/10.1007/s13197-013-1195-4.
Henrik, H., & Marhayani, M. (2020). Egg production and quality of Magelang duck, Mojosari duck, and their reciprocal crosses. Jurnal Ilmu-Ilmu Peternakan, 30(3), 180–183. https://doi.org/10.21776/ub.jiip.2020.030.03.01
Hidanah, S., Nazar, D. S., & Safitri, E. (2018). The improvement of eggs quality of Mojosari duck (Anas javanica) with soybean husk fermentation using cellulolytic bacteria of Spodoptera litura. Veterinary World, 11(5), 720–725. https://doi.org/10.14202/vetworld.2018.720-725.
Jaengkarnkit, P. (2019). Microbiological Analysis FI-PTM 01-2019: Total Plate Count (CFU/g). In Departement, Laboratory Service.
Janßen, T., Schwarz, C., Preikschat, P., Voss, M., Philipp, H. C., & Wieler, L. H. (2001). Virulence-associated genes in avian pathogenic Escherichia coli (APEC) isolated from internal organs of poultry having died from colibacillosis. International Journal of Medical Microbiology, 291(5), 371–378. https://doi.org/10.1078/1438-4221-00143.
Khan, R. U., Naz, S., Javdani, M., Nikousefat, Z., Selvaggi, M., Tufarelli, V., & Laudadio, V. (2012). The use of Turmeric (Curcuma longa) in poultry feed. In World’s Poultry Science Journal (Vol. 68, Issue 1, pp. 97–103). https://doi.org/10.1017/S0043933912000104.
Kim, H., Park, B. S., Lee, K. G., Cheol, Y. C., Sung, S. J., Kim, Y. H., & Lee, S. E. (2005). Effects of naturally occurring compounds on fibril formation and oxidative stress of β-amyloid. Journal of Agricultural and Food Chemistry, 53(22), 8537–8541. https://doi.org/10.1021/jf051985c.
Landers, T. F., Cohen, B., Wittum, T. E., & Larson, E. L. (2012). A review of antibiotic use in food animals: Perspective, policy, and potential. In Public Health Reports (Vol. 127, Issue 1, pp. 4–22). https://doi.org/10.1177/003335491212700103.
Lestari, R. D., Lokapirnasari, W. P., Al Arif, M. A., Hidanah, S., Soeharsono, S., & Lamid, M. (2021). The Effect of Additional Feed Fermentation of Moringa Oleifera Leaves on The Cholesterol Level of Mojosari Laying Ducks. Jurnal Medik Veteriner, 4(2), 221–225. https://doi.org/10.20473/jmv.vol4.iss2.2021.221-225.
Loisa, L., Lukman, D. W., & Latif, H. (2016). Resistance of Salmonella spp. to Several Antibiotics from Duck Meat in Bogor District that Could Influence Consumer Heal. Jurnal Kedokteran Hewan - Indonesian Journal of Veterinary Sciences, 10(2), 115–120. https://doi.org/10.21157/j.ked.hewan.v10i2.5040.
Manin, F. (2003). Efektivitas kultur Bacillus circulans & Bacillus sp. dan Saccharomyces cerevisiae sebagai sumber probiotik dan implikasinya terhadap produktivitas ternak itik lokal Kerinci. Universitas Padjadjaran, Bandung, Indonesia.
Manyi-Loh, C., Mamphweli, S., Meyer, E., & Okoh, A. (2018). Antibiotic use in agriculture and its consequential resistance in environmental sources: Potential public health implications. In Molecules (Vol. 23, Issue 4, p. 795). https://doi.org/10.3390/molecules23040795.
Naeem, M., Ilyas, M., Haider, S., Baig, S., & Saleem, M. (2012). Isolation characterization and identification of lactic acid bacteria from fruit juices and their efficacy against antibiotics. Pakistan Journal of Botany, 44, 323–328.
Najwan, R., Lokapirnasari, W. P., Soeharsono, S., & Huda, K. (2019). Pengaruh penambahan probiotik lactobacillus acidophilus dan bifidobacterium terhadap produksi ayam petelur yang diinfeksi Escherichia coli. Briliant: Jurnal Riset Dan Konseptual, 1(1), 1–9. https://doi.org/10.28926/briliant.v4i2.280.
Niamsa, N., & Sittiwet, C. (2009). Antimicrobial activity of Curcuma longa aqueous extract. Journal of Pharmacology and Toxicology, 4(4), 173–177. https://doi.org/10.3923/jpt.2009.173.177
Nurina, R., Sudjarwo, E., & Widodo, E. (2016). Uji aktivitas antibakteri ekstrak herbal terhadap bakteri Escherichia coli. Jurnal Ilmu-Ilmu Peternakan, 24(3), 24–31.
Packiavathy, I. A. S. V., Priya, S., Pandian, S. K., & Ravi, A. V. (2014). Inhibition of biofilm development of uropathogens by curcumin - An anti-quorum sensing agent from Curcuma longa. Food Chemistry, 148, 453–460. https://doi.org/10.1016/j.foodchem.2012.08.002
Putu, K. I. (2009). Pemanfaatan mikroorganisme sebagai probiotik pemanfaatan mikroorganisme sebagai probiotik untuk meningkatkan produksi ternak unggas di Indonesia. Pengembangan Inovasi Pertanian, 2(3), 177–191.
Shah, N. P. (2007). Functional cultures and health benefits. In International Dairy Journal (Vol. 17, pp. 1262–1277). https://doi.org/10.1016/j.idairyj.2007.01.014
Sjofjan, O., & Adli, D. N. (2020). Effect of Dietary of Supplementation Mannan-Riched Fraction (MRF) and Probiotic-Enhanced Liquid Acidifier on the Growth Performance, Serum Blood Biochemistry, and Intestinal Properties of Broilers. IOP Conference Series: Earth and Environmental Science, 478 012066. https://doi.org/10.1088/1755-1315/478/1/012066.
Sjojan, O., Adli, D. N., Natsir, M. H., & Kusumaningtyaswati, A. (2020). Pengaruh kombinasi tepung kunyit (Curcuma domestica Val.) dan probiotik terhadap penampilan usus ayam pedaging. Jurnal Nutrisi Ternak Tropis Dan Ilmu Pakan, 2(1), 19–24. https://doi.org/10.24198/jnttip.v2i1.26587.
Teow, S. Y., Liew, K., Ali, S. A., Khoo, A. S. B., & Peh, S. C. (2016). Antibacterial Action of Curcumin against Staphylococcus aureus: A Brief Review. In Journal of Tropical Medicine (p. 2853045). https://doi.org/10.1155/2016/2853045.
Toghyani, M., Mohammadrezqei, M Gheisari, A., Tabeidian, S. A., & Ghalamkari, G. (2011). Effect of cocoa and thyme powder alone or in combination on humoral immunity and serum biochemical metabolites of broiler chikks. 2nd International Conference on Agricultural and Animal Science, 114–117.
Tyagi, P., Singh, M., Kumari, H., Kumari, A., & Mukhopadhyay, K. (2015). Bactericidal activity of curcumin I is associated with damaging of bacterial membrane. PLoS ONE, 10(3), e0121313. https://doi.org/10.1371/journal.pone.0121313
Walton, J. R. (1977). Mechanism of growth promotion: non-lethal feed antibiotic induced, cell wall lesions in enteric bacteria. In Antibiotics and Antibiosis in Agriculture (p. p 259-264.). Butterworths, London. https://doi.org/10.1016/b978-0-408-70917-0.50025-3
Wilken, R., Veena, M. S., Wang, M. B., & Srivatsan, E. S. (2011). Curcumin: A review of anti-cancer properties and therapeutic activity in head and neck squamous cell carcinoma. In Molecular Cancer (Vol. 10, p. 12). https://doi.org/10.1186/1476-4598-10-12
Zada, A. A. S. (2021). Perbedaan hasil uji aktivitas antibakteri metode Well Diffusion dan Kirby Bauer terhadap pertumbuhan bakteri. Jurnal Medika Hutama, 2, 1156–1161.
Zurmiati, M., Mahata, E., Abbas, M. H., & Wizna. (2014). Aplikasi probiotik untuk ternak itik. Jurnal Peternakan Indonesia, 16(2), 134–144.
Copyright (c) 2024 Journal La Lifesci

This work is licensed under a Creative Commons Attribution-ShareAlike 4.0 International License.



